Skip to main content

Myung Gyu Park

Sungkyunkwan University · 神経科学

研究室紹介

Professor Myung Gyu Park's research lab specializes in cellular and systems neuroscience, focusing on intracellular calcium signaling, ion channel function, and neuronal excitability in highly polarized neurons—particularly midbrain dopamine neurons. The lab investigates how subcellular organelles like the endoplasmic reticulum regulate localized and global Ca²⁺ dynamics, and how these signals influence neuronal firing, synaptic integration, and neurotransmitter release. Using advanced electrophysiological techniques such as patch-clamp recording, two-photon uncaging, and live imaging, the lab explores the spatial and functional organization of ion channels and Ca²⁺ stores in dendrites and soma.

calcium signalingdopamine neuronsion channelsendoplasmic reticulumneuronal excitability

Research Overview

Papers
60
Total Citations
1,653
Papers (5y)
10
Primary Field
神経科学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
10total
2020
2021
2022
2024
2025
Citations per year (5y)
87total
20202021202220242025

Selected Papers

15
1
Article|239 citations·2000
The endoplasmic reticulum as one continuous Ca2+ pool: visualization of rapid Ca2+ movements and equilibration
Myoung Kyu Park, Ole H. Petersen, Alexei V. Tepikin
SJR Q1The EMBO JournalOA
PhysiologyBiochemistry, Genetics and Molecular Biology
2
Review|157 citations·2001
The endoplasmic reticulum: one continuous or several separate Ca2+ stores?
Ole H. Petersen, Alexei V. Tepikin, Myoung Kyu Park
SJR Q1Trends in Neurosciences
Cellular and Molecular NeuroscienceNeuroscience
3
Article|102 citations·2001
Local uncaging of caged Ca 2+ reveals distribution of Ca 2+ -activated Cl − channels in pancreatic acinar cells
Myoung Kyu Park, Richard B. Lomax, Alexei V. Tepikin, Ole H. Petersen
SJR Q1Proceedings of the National Academy of SciencesOA

In exocrine acinar cells, Ca(2+)-activated Cl(-) channels in the apical membrane are essential for fluid secretion, but it is unclear whether such channels are important for Cl(-) uptake at the base. Whole-cell current recording, combined with local uncaging of caged Ca(2+), was used to reveal the Cl(-) channel distribution in mouse pancreatic acinar cells, where approximately 90% of the current activated by Ca(2+) in response to acetylcholine was carried by Cl(-). When caged Ca(2+) in the cytos

Molecular BiologyBiochemistry, Genetics and Molecular Biology
4
Article|84 citations·1999
Contribution of Ca2+‐activated K+ channels and non‐selective cation channels to membrane potential of pulmonary arterial smooth muscle cells of the rabbit
Young Min Bae, Myoung Kyu Park, Suk‐Ho Lee, Won‐Kyung Ho, Yung E. Earm
SJR Q1The Journal of PhysiologyOA

1. Using the perforated patch-clamp or whole-cell clamp technique, we investigated the contribution of Ca2+-activated K+ current (IK(Ca)) and non-selective cation currents (INSC) to the membrane potential in small pulmonary arterial smooth muscle cells of the rabbit. 2. The resting membrane potential (Vm) was -39.2 +/- 0.9 mV (n = 72). It did not stay at a constant level, but hyperpolarized irregularly, showing spontaneous transient hyperpolarizations (STHPs). The mean frequency and amplitude of

Molecular BiologyBiochemistry, Genetics and Molecular Biology
5
Article|76 citations·2006
Regional Interaction of Endoplasmic Reticulum Ca2+Signals between Soma and Dendrites through Rapid Luminal Ca2+Diffusion
Yu Mi Choi, Shin Hye Kim, Sungkwon Chung, Dae Yong Uhm, Myoung Kyu Park
SJR Q1Journal of NeuroscienceOA

The endoplasmic reticulum (ER) Ca2+ store plays a key role in integration and conveyance of Ca2+ signals in highly polarized neurons. The interconnected ER network in neurons generates Ca2+ signals in local domains, but the regional interaction is unclear. Here, we show that continuous or repetitive applications of caffeine produced robust Ca2+ release from the ER Ca2+ store in dendritic areas without severe store depletion, but that similar stimuli applied to soma caused rapid store depletion i

Cellular and Molecular NeuroscienceNeuroscience
6
Article|71 citations·1995
Different modulation of Ca-activated K channels by the intracellular redox potential in pulmonary and ear arterial smooth muscle cells of the rabbit
Myoung Kyu Park, Suk‐Ho Lee, Sang Jin Lee, Won Kyung Ho, Yung E. Earm
SJR Q1Pflügers Archiv - European Journal of Physiology
Molecular BiologyBiochemistry, Genetics and Molecular Biology
7
Review|49 citations·2007
The Endoplasmic Reticulum as an Integrator of Multiple Dendritic Events
Myoung Kyu Park, Yu Mi Choi, Yun Kyung Kang, Ole H. Petersen
SJR Q1The Neuroscientist

Dendrites are integrating elements that receive numerous subsets of heterogeneous synaptic inputs, which generate temporally and spatially distinct changes in membrane potential and intracellular Ca2+ levels in local domains. The ubiquitously distributed endoplasmic reticulum (ER) in dendrites is luminally connected to the bulk ER in the soma, constituting a huge interconnected intracellular network that allows rapid Ca2+ diffusion and equilibration. The ER is an excitable organelle that can eli

Cellular and Molecular NeuroscienceNeuroscience
8
Article|43 citations·2007
Nonselective cation channels are essential for maintaining intracellular Ca2+ levels and spontaneous firing activity in the midbrain dopamine neurons
Shin Hye Kim, Yu Mi Choi, Jin Yong Jang, Sungkwon Chung, Yun Kyung Kang, Myoung Kyu Park
SJR Q1Pflügers Archiv - European Journal of Physiology
Molecular BiologyBiochemistry, Genetics and Molecular Biology
9
Article|26 citations·2010
Regulation of dopaminergic neuron firing by heterogeneous dopamine autoreceptors in the substantia nigra pars compacta
Jin Young Jang, Mi‐Ae Jang, Shin Hye Kim, Ki Bum Um, Yun Kyung Kang, Hyun Jin Kim, Sungkwon Chung, Myoung Kyu Park
SJR Q1Journal of NeurochemistryOA

Dopamine (DA) receptors generate many cellular signals and play various roles in locomotion, motivation, hormone production, and drug abuse. According to the location and expression types of the receptors in the brain, DA signals act in either stimulatory or inhibitory manners. Although DA autoreceptors in the substantia nigra pars compacta are known to regulate firing activity, the exact expression patterns and roles of DA autoreceptor types on the firing activity are highly debated. Therefore,

Cellular and Molecular NeuroscienceNeuroscience
11
Article|23 citations·2014
Balance between the proximal dendritic compartment and the soma determines spontaneous firing rate in midbrain dopamine neurons
Jin‐Young Jang, Ki Bum Um, Mi‐Ae Jang, Shin Hye Kim, Hana Cho, Sungkwon Chung, Hyun Jin Kim, Myoung Kyu Park
SJR Q1The Journal of PhysiologyOA

Key points The electrical coupling between the soma and dendritic compartments has been regarded as a key determinant for the spontaneous firing rate (SFR) in midbrain dopamine neurons. Isolated nigral dopamine neurons showed a wide range of soma size and a variable number of primary dendrites but preserved a quite consistent SFR. The SFR was not correlated with soma size or with the number of primary dendrites, but it was strongly correlated with the area ratios of the proximal dendritic compar

Cognitive NeuroscienceNeuroscience
12
Article|21 citations·2020
N‐benzhydryl quinuclidine compounds are a potent and Src kinase‐independent inhibitor of NALCN channels
Suyun Hahn, So Woon Kim, Ki Bum Um, Hyun Jin Kim, Myoung Kyu Park
SJR Q1British Journal of PharmacologyOA

Background and Purpose NALCN is a Na + leak, GPCR‐activated channel that regulates the resting membrane potential and neuronal excitability. Despite numerous possible roles for NALCN in both normal physiology and disease processes, lack of specific blockers hampers further investigation. Experimental Approach The effect of N ‐benzhydryl quinuclidine compounds on NALCN channels was demonstrated using whole‐cell patch‐clamp recordings in HEK293T cells overexpressing NALCN and acutely isolated nigr

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|19 citations·2022
Proximal dendritic localization of NALCN channels underlies tonic and burst firing in nigral dopaminergic neurons
Suyun Hahn, Ki Bum Um, So Woon Kim, Hyun Jin Kim, Myoung Kyu Park
SJR Q1The Journal of Physiology

Abstract In multipolar nigral dopamine (DA) neurons, the highly excitable proximal dendritic compartments (PDCs) and two Na + ‐permeable leak channels, TRPC3 and NALCN, play a key role in pacemaking. However, the causal link between them is unknown. Here we report that the proximal dendritic localization of NALCN underlies pacemaking and burst firing in DA neurons. Our morphological analysis of nigral DA neurons reveals that TRPC3 is ubiquitously expressed in the whole somatodendritic compartmen

Cellular and Molecular NeuroscienceNeuroscience
14
Article|19 citations·2004
Two different Ca2+‐dependent inhibitory mechanisms of spontaneous firing by glutamate in dopamine neurons
Shin Hye Kim, Yu Mi Choi, Sungkwon Chung, Dae Yong Uhm, Myoung Kyu Park
SJR Q1Journal of Neurochemistry

The excitatory neurotransmitter, glutamate, generates a characteristic burst-pause type of firing in midbrain dopamine neurons in association with the reward behavior, but the cellular mechanism by which glutamate generates these bursts is unknown. Here, we show that the bursts in spontaneously firing dopamine neurons can be generated by the combinative actions of the brief stimulatory and the subsequent Ca(2+)-dependent inhibitory signals in response to glutamate stimulation. The two Ca(2+)-dep

Cellular and Molecular NeuroscienceNeuroscience
15
Article|9 citations·2005
Endoplasmic Reticulum Ca2+ Store: Regulation of Ca2+ Release and Reuptake by Intracellular and Extracellular Ca2+ in Pancreatic Acinar Cells
Yun Kyung Kang, Myoung Kyu Park
SJR Q1Molecules and CellsOA

We investigated the effect of cytosolic and extracellular Ca2+ on Ca2+ signals in pancreatic acinar cells by measuring Ca2+ concentration in the cytosol([Ca2+]c) and in the lumen of the ER([Ca2+]Lu). To control buffers and dye in the cytosol, a patch-clamp microelectrode was employed. Acetylcholine released Ca2+ mainly from the basolateral ER-rich part of the cell. The rate of Ca2+ release from the ER was highly sensitive to the buffering of [Ca2+]c whereas ER Ca2+ refilling was enhanced by supp

Molecular BiologyBiochemistry, Genetics and Molecular Biology

Research Areas

Molecular BiologyCellular and Molecular NeurosciencePhysiologyBehavioral NeuroscienceSensory SystemsCognitive Neuroscience

Myung Gyu Parkの研究をNubintでさらに深く

この研究室の論文をアプリで開き、AIと共に読み、要約し、引用しましょう。